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在水介质中使用金属有机框架-药物复合材料原位一步封装和控制化疗药物递送的智能方法。

Smart Approach for In Situ One-Step Encapsulation and Controlled Delivery of a Chemotherapeutic Drug using Metal-Organic Framework-Drug Composites in Aqueous Media.

作者信息

Adhikari Chandan, Chakraborty Anjan

机构信息

Discipline of Chemistry, Indian Institute of Technology Indore, Indore, Madhya Pradesh, India.

出版信息

Chemphyschem. 2016 Apr 4;17(7):1070-7. doi: 10.1002/cphc.201501012. Epub 2016 Feb 16.

Abstract

Controlled release of an anticancer drug, doxorubicin (dox), from metal-organic framework (MOF)-drug composites is demonstrated under different external stimuli. 1,3,5-Benzenetricarboxylic acid (H3 BTC) is used as an organic ligand, and iron acetate and zinc nitrate are used as metal sources to synthesize Fe-BTC and Zn-BTC MOFs, which are known to be biocompatible. The in situ formation of MOF-drug composites demonstrates high drug loading capacity compared to conventional methods. The present methodology is devoid of any extra steps for loading the drug after synthesis. Moreover, the drug loading is also independent of pore size of the MOF as the drug molecules are embedded inside the MOF during their in situ formation. The drug release was monitored under external stimuli including change to acidic pH and the presence of biocompatible liposomes for a period of more than 72 h. Steady-state fluorescence spectroscopy is used to monitor the drug release as a function of time and confocal laser scanning microscopy is used to unravel the post-release fate of doxorubicin in the presence of liposomes. It is found that drug release rate is higher for the Zn-BTC-dox composite than for the Fe-BTC-dox composite. This is attributed to the stronger binding between dox and Fe-BTC than that between dox and Zn-BTC. This study highlights a novel approach for the preparation of MOF-drug composites in an aqueous medium for future biomedical applications.

摘要

在不同的外部刺激下,展示了抗癌药物阿霉素(dox)从金属有机框架(MOF)-药物复合物中的控释情况。1,3,5-苯三甲酸(H3 BTC)用作有机配体,醋酸铁和硝酸锌用作金属源来合成Fe-BTC和Zn-BTC MOF,已知它们具有生物相容性。与传统方法相比,MOF-药物复合物的原位形成显示出高载药量。本方法在合成后无需任何额外的药物加载步骤。此外,由于药物分子在原位形成过程中嵌入MOF内部,药物加载也与MOF的孔径无关。在外部刺激下监测药物释放,包括改变为酸性pH值以及存在生物相容性脂质体,持续时间超过72小时。稳态荧光光谱用于监测药物释放随时间的变化,共聚焦激光扫描显微镜用于揭示在脂质体存在下阿霉素释放后的命运。发现Zn-BTC-dox复合物的药物释放速率高于Fe-BTC-dox复合物。这归因于阿霉素与Fe-BTC之间的结合比阿霉素与Zn-BTC之间的结合更强。这项研究突出了一种在水性介质中制备MOF-药物复合物的新方法,用于未来的生物医学应用。

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